Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have been searching days why this piece of code is not working. Adjusted the code multiple times by searching for posts with the same problem.

Problem: my php file doesn't seem to get the values it needs from a simple HTML form (made w. bootstrap) via POST-method. I use the issit function to check if the submit button has been clicked and thereafter I use to check if the form was filled out completely.

Please note that I am relatively new to php. I hope I did miss something and it is not just a simple typo.

PHP code (bootstrap/php/boeking.php)

<?php

//<!--debug-->

error_reporting(E_ALL);
ini_set('display_errors', '1');


//<!--connectie-->

mysql_connect("localhost","root","root") or die(mysql_error());
mysql_select_db("hota") or die(mysql_error());


//<!--boeking info verzenden-->

if(isset($_POST['send']))

{

if (isset($_POST['achternaam'])) 
{
   $anaam = $_POST['achternaam'];
   // do whatever here
}

if(isset($_POST['voornaam']))
{
$vnaam =  $_POST['voornaam'];

}

}



$anaam = mysql_real_escape_string($anaam);
$vnaam = mysql_real_escape_string($vnaam);


$boek = "INSERT INTO klant (achternaam , voornaam) VALUES ('{$anaam}', '{$vnaam}')";

mysql_query($boek);

?>

HTML code:

<form id="newbook" method="POST" action="bootstrap/php/boeking.php" class="form-horizontal">
  <legend>Nieuwe boeking</legend>
   <div class="control-group">
      <label class="control-label" for="voornaam">Voornaam</label>
      <div class="controls">
        <input type="text" name="voornaam" id="voornaam" placeholder="Voornaam">
      </div>
   </div>
   <div class="control-group">
      <label class="control-label" for="achternaam">Achternaam</label>
      <div class="controls">
        <input type="text" name="achternaam" id="achternaam" placeholder="Achternaam">
      </div>
    </div>
   <div class="control-group">
      <div class="controls">
        <button type="submit" name="send" class="btn">Sign in</button>
      </div>
   </div>
  </form>

Thanks in advance!

UPDATE:

changed my php-code.

Not getting the undefined index error anymore.
Var_dump($vnaam); and var_dump($anaam); do indicate that strings are passed to the php but after that, when the query is fired, things don't seem to get send to the db.

Might this be a problem in my query ?

(already thanks for the tips: gave the button a value and used var_dump)

This is my new code :

<?php

//<!--debug-->

error_reporting(E_ALL);
ini_set('display_errors', '1');


//<!--connectie-->

mysql_connect("localhost","root","root") or die(mysql_error());
mysql_select_db("hota") or die(mysql_error());


$anaam = '';
$vnaam = '';


if(!isset($_POST['send'])) { 

} 
 else
{

if (isset($_POST['achternaam'])) 
{
   $anaam = $_POST['achternaam'];
   // do whatever here

}

if(isset($_POST['voornaam']))
{
$vnaam =  $_POST['voornaam'];


}
var_dump($vnaam);
var_dump($anaam);


    $anaam = mysql_real_escape_string($anaam);
    $vnaam = mysql_real_escape_string($vnaam);

}

var_dump($vnaam);


$boek = "INSERT INTO klant (achternaam , voornaam) VALUES ('{$anaam}', '{$vnaam}')";

mysql_query($boek);

?>
share|improve this question
    
Is your PHP script definitely being reached when the form is submit? –  What have you tried Apr 23 '13 at 1:01
    
Which line is the error happening on, and what is the undefined index in the error message? –  Barmar Apr 23 '13 at 1:04
    
@elclanrs Even using mysql_real_escape_string? –  Barmar Apr 23 '13 at 1:07
    
I noticed that, I think that must be the most unfortunate and confusing function name. lol. Is it real or not real? –  elclanrs Apr 23 '13 at 1:09
    
@elclanrs There's another function mysql_escape_string that's slightly different. mysql_real_escape_string is the one you should really use. –  Barmar Apr 23 '13 at 1:17

5 Answers 5

up vote 1 down vote accepted

You can try it with :

replace

<button type="submit" name="send" class="btn">Sign in</button>

with

<input type="submit" name="send" value="Sign in" />

and

   if(isset($_POST['send']))

    {

    if (isset($_POST['achternaam'])) 
    {
       $anaam = $_POST['achternaam'];
       // do whatever here
    }

    if(isset($_POST['voornaam']))
    {
    $vnaam =  $_POST['voornaam'];

    }

    }

    $anaam = mysql_real_escape_string($anaam);
    $vnaam = mysql_real_escape_string($vnaam);
    [...]

with

if(!isset($_POST['send'])) { 
    echo " No valid Post ";
} 
 else
{

if (isset($_POST['achternaam'])) 
{
   $anaam = $_POST['achternaam'];
   // do whatever here
}

if(isset($_POST['voornaam']))
{
$vnaam =  $_POST['voornaam'];

}

    $anaam = mysql_real_escape_string($anaam);
    $vnaam = mysql_real_escape_string($vnaam);
    [...]
}

clickable buttons

<button type="submit" name="send" class="btn">Sign in</button>

To specify what should happen when the button is clicked, you can use for example the side onclick event handler. The value assigned to the event handler attribute, you can then write JavaScript code.

In other respects, these buttons for the same thing has been said for their conventional counterparts: Without JavaScript they are completely functionless.

share|improve this answer

Edit:

You need to give your button a value or isset will return false.


It's unclear if you're still having the undefined index error, but if you've made it past that try declaring your variables outside the if statements.

$anaam = '';
$vnaam = '';

if(isset($_POST['send']))    
{

    if (isset($_POST['achternaam'])) 
    {
       $anaam = $_POST['achternaam'];
       // do whatever here
    }

    if(isset($_POST['voornaam']))
    {
        $vnaam =  $_POST['voornaam'];    
    }
}
share|improve this answer

Solved the issue of the undefined index by adjusting the code as seen in the update I wrote in my original post. After that problem was solved the query refused to fire and put the data in the database because of a DUPLICATE of the PRIMARY KEY. After solving this, it worked like a charm. Is this info sufficient enough to help people facing some of the same issues or should I be more thorough?

Anyway, many thanks to all responders!

share|improve this answer

You could debug by outputting the $_POST variable with var_dump() to see if there is anything at all.

If there is nothing, are you sure you are not redirecting the browser to the page where you try to look up for the values?

If there are something set, then perhaps the isset($_POST["send"]) returns false.

And please use PDO instead of those soon-to-be-deprecated and bad mysql_ functions.

share|improve this answer
    
Just tried using var_dump(), put it just behind the post-methods for the form contents and it DOES return the strings. So this means the form contents are in fact reaching the php via the post method, am I right? –  Tim Scheys Apr 23 '13 at 13:08
    
Also, when hitting the submit button, I go to a blank page with link: localhost:8888/bootstrap/php/boeking.php. Only thing on it are the var_dump() strings, so no returning to the original form what so ever. –  Tim Scheys Apr 23 '13 at 13:10

Try this....

if($_SERVER['REQUEST_METHOD'] == 'POST'){

   $voornaam = $_POST['voornaam'];
   $achternaam = $_POST['achternaam'];

   // Validate post input here

   // Please use PDO or MySQLi at least. It's easier than it looks...
   try {
       $conn = new PDO("mysql:host=$db_host;dbname=$db_name", $db_user, $db_pass, array(PDO::ATTR_PERSISTENT => true));
       $conn->setAttribute(PDO::ATTR_ERRMODE, PDO::ERRMODE_EXCEPTION);
   } catch(Exception $e) {
       echo 'Error connecting to the database.';
   }

     $stmt = $conn->prepare('INSERT INTO klant (achternaam, voornaam) VALUES (:achternaam, :voornaam)');
     $stmt->bindValue(':achternaam', $achternaam);
     $stmt->bindValue(':voornaam', $voornaam);
     $stmt->execute();
}
share|improve this answer
    
It's not really a good practice to allow ANY post to go inside of the if statement, and assuming that voornam and achternaam are set. –  Jonast92 Apr 23 '13 at 1:36
    
What is the problem putting them inside the if? I suppose this user is a beginner, but I would also use javascript validation to determine if they are set, as well as php validation on the post variables to sanitize them. I am not here to write a book though... –  Chris Apr 23 '13 at 1:39
    
He should be doing isset($_POST['send']), that is, the identification of the submit button. –  Jonast92 Apr 23 '13 at 1:46
    
The button fails when users submit the form via the enter key in some browsers and certain javascript submission methods. I also do not see the problem if you are validating the fields properly. This also has nothing to do with your first comment, you misdirected. To get back on topic, why can I not use post data inside the if statement? –  Chris Apr 23 '13 at 1:55
    
Just cause a post was made doesn't mean that voornaam and achternaam were posted. Neither could have been posted or just one of them. –  Jonast92 Apr 23 '13 at 10:22

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.